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Epigenetic Regulation by Chromatin Activation Mark H3K4me3 in Primate Progenitor Cells within Adult Neurogenic Niche

机译:染色质活化标记H3K4me3在成年神经源性利基体内灵长类祖细胞中的表观遗传调控。

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摘要

Histone 3 lysine 4 trimethylation (H3K4me3) is known to be associated with transcriptionally active or poised genes and required for postnatal neurogenesis within the subventricular zone (SVZ) in the rodent model. Previous comparisons have shown significant correlation between baboon (Papio anubis) and human brain. In this study, we demonstrate that chromatin activation mark H3K4me3 is present in undifferentiated progenitor cells within the SVZ of adult baboon brain. To identify the targets and regulatory role of H3K4me3 within the baboon SVZ, we developed a technique to purify undifferentiated SVZ cells while preserving the endogenous nature without introducing culture artifact to maintain the in vivo chromatin state for genome-wide studies (ChIP-Seq and RNA-Seq). Overall, H3K4me3 is significantly enriched for genes involved in cell cycle, metabolism, protein synthesis, signaling pathways, and cancer mechanisms. Additionally, we found elevated levels of H3K4me3 in the MRI-classified SVZ-associated Glioblastoma Multiforme (GBM), which has a transcriptional profile that reflects the H3K4me3 modifications in the undifferentiated progenitor cells of the baboon SVZ. Our findings highlight the importance of H3K4me3 in coordinating distinct networks and pathways for life-long neurogenesis, and suggest that subtypes of GBM could occur, at least in part, due to aberrant H3K4me3 epigenetic regulation.
机译:已知组蛋白3赖氨酸4三甲基化(H3K4me3)与转录活性或平衡基因相关,是啮齿动物模型中脑室下区域(SVZ)内出生后神经发生所必需的。先前的比较显示了狒狒(Papio anubis)与人脑之间的显着相关性。在这项研究中,我们证明了染色质激活标记H3K4me3存在于成年狒狒脑SVZ内未分化的祖细胞中。为了确定狒狒SVZ中H3K4me3的靶标和调控作用,我们开发了一种技术,可在不引入培养物的情况下纯化未分化的SVZ细胞,而无需引入培养物以保持体内染色质状态进行全基因组研究(ChIP-Seq和RNA -Seq)。总体而言,H3K4me3的细胞周期,代谢,蛋白质合成,信号通路和癌症机制中涉及的基因明显丰富。此外,我们在MRI分类的SVZ相关胶质母细胞瘤多形体(GBM)中发现了H3K4me3的升高水平,其转录谱反映了狒狒SVZ未分化祖细胞中的H3K4me3修饰。我们的发现凸显了H3K4me3在协调终生神经发生的独特网络和途径中的重要性,并暗示GBM的亚型可能至少部分是由于异常的H3K4me3表观遗传调控所致。

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